Literature DB >> 27478528

Embedding objects during 3D printing to add new functionalities.

Po Ki Yuen1.   

Abstract

A novel method for integrating and embedding objects to add new functionalities during 3D printing based on fused deposition modeling (FDM) (also known as fused filament fabrication or molten polymer deposition) is presented. Unlike typical 3D printing, FDM-based 3D printing could allow objects to be integrated and embedded during 3D printing and the FDM-based 3D printed devices do not typically require any post-processing and finishing. Thus, various fluidic devices with integrated glass cover slips or polystyrene films with and without an embedded porous membrane, and optical devices with embedded Corning(®) Fibrance™ Light-Diffusing Fiber were 3D printed to demonstrate the versatility of the FDM-based 3D printing and embedding method. Fluid perfusion flow experiments with a blue colored food dye solution were used to visually confirm fluid flow and/or fluid perfusion through the embedded porous membrane in the 3D printed fluidic devices. Similar to typical 3D printed devices, FDM-based 3D printed devices are translucent at best unless post-polishing is performed and optical transparency is highly desirable in any fluidic devices; integrated glass cover slips or polystyrene films would provide a perfect optical transparent window for observation and visualization. In addition, they also provide a compatible flat smooth surface for biological or biomolecular applications. The 3D printed fluidic devices with an embedded porous membrane are applicable to biological or chemical applications such as continuous perfusion cell culture or biocatalytic synthesis but without the need for any post-device assembly and finishing. The 3D printed devices with embedded Corning(®) Fibrance™ Light-Diffusing Fiber would have applications in display, illumination, or optical applications. Furthermore, the FDM-based 3D printing and embedding method could also be utilized to print casting molds with an integrated glass bottom for polydimethylsiloxane (PDMS) device replication. These 3D printed glass bottom casting molds would result in PDMS replicas with a flat smooth bottom surface for better bonding and adhesion.

Entities:  

Year:  2016        PMID: 27478528      PMCID: PMC4947038          DOI: 10.1063/1.4958909

Source DB:  PubMed          Journal:  Biomicrofluidics        ISSN: 1932-1058            Impact factor:   2.800


  21 in total

Review 1.  3D printed microfluidics for biological applications.

Authors:  Chee Meng Benjamin Ho; Sum Huan Ng; King Ho Holden Li; Yong-Jin Yoon
Journal:  Lab Chip       Date:  2015       Impact factor: 6.799

2.  Ultrarapid detection of pathogenic bacteria using a 3D immunomagnetic flow assay.

Authors:  Wonjae Lee; Donghoon Kwon; Boram Chung; Gyoo Yeol Jung; Anthony Au; Albert Folch; Sangmin Jeon
Journal:  Anal Chem       Date:  2014-06-17       Impact factor: 6.986

3.  Multidimensional modular microfluidic system.

Authors:  Po Ki Yuen; Jody T Bliss; Christopher C Thompson; Richard C Peterson
Journal:  Lab Chip       Date:  2009-08-21       Impact factor: 6.799

4.  Advances in three-dimensional rapid prototyping of microfluidic devices for biological applications.

Authors:  P F O'Neill; A Ben Azouz; M Vázquez; J Liu; S Marczak; Z Slouka; H C Chang; D Diamond; D Brabazon
Journal:  Biomicrofluidics       Date:  2014-10-16       Impact factor: 2.800

5.  3D printed microfluidic devices with integrated valves.

Authors:  Chad I Rogers; Kamran Qaderi; Adam T Woolley; Gregory P Nordin
Journal:  Biomicrofluidics       Date:  2015-01-13       Impact factor: 2.800

6.  Configurable 3D-Printed millifluidic and microfluidic 'lab on a chip' reactionware devices.

Authors:  Philip J Kitson; Mali H Rosnes; Victor Sans; Vincenza Dragone; Leroy Cronin
Journal:  Lab Chip       Date:  2012-08-09       Impact factor: 6.799

7.  Continuous microcarrier-based cell culture in a benchtop microfluidic bioreactor.

Authors:  F Abeille; F Mittler; P Obeid; M Huet; F Kermarrec; M E Dolega; F Navarro; P Pouteau; B Icard; X Gidrol; V Agache; N Picollet-D'hahan
Journal:  Lab Chip       Date:  2014-07-11       Impact factor: 6.799

8.  Three-dimensional printed sample load/inject valves enabling online monitoring of extracellular calcium and zinc ions in living rat brains.

Authors:  Cheng-Kuan Su; Sheng-Chieh Hsia; Yuh-Chang Sun
Journal:  Anal Chim Acta       Date:  2014-06-21       Impact factor: 6.558

9.  3D printed chip for electrochemical detection of influenza virus labeled with CdS quantum dots.

Authors:  Ludmila Krejcova; Lukas Nejdl; Miguel Angel Merlos Rodrigo; Michal Zurek; Miroslav Matousek; David Hynek; Ondrej Zitka; Pavel Kopel; Vojtech Adam; Rene Kizek
Journal:  Biosens Bioelectron       Date:  2013-11-01       Impact factor: 10.618

10.  Mail-order microfluidics: evaluation of stereolithography for the production of microfluidic devices.

Authors:  Anthony K Au; Wonjae Lee; Albert Folch
Journal:  Lab Chip       Date:  2014-04-07       Impact factor: 6.799

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  5 in total

1.  Moving from millifluidic to truly microfluidic sub-100-μm cross-section 3D printed devices.

Authors:  Michael J Beauchamp; Gregory P Nordin; Adam T Woolley
Journal:  Anal Bioanal Chem       Date:  2017-06-13       Impact factor: 4.142

2.  3D printed auto-mixing chip enables rapid smartphone diagnosis of anemia.

Authors:  Kimberly Plevniak; Matthew Campbell; Timothy Myers; Abby Hodges; Mei He
Journal:  Biomicrofluidics       Date:  2016-10-05       Impact factor: 2.800

3.  3D-printed miniaturized fluidic tools in chemistry and biology.

Authors:  C K Dixit; K Kadimisetty; J Rusling
Journal:  Trends Analyt Chem       Date:  2018-07-05       Impact factor: 12.296

Review 4.  3D Printed Microfluidics.

Authors:  Anna V Nielsen; Michael J Beauchamp; Gregory P Nordin; Adam T Woolley
Journal:  Annu Rev Anal Chem (Palo Alto Calif)       Date:  2019-12-10       Impact factor: 10.745

Review 5.  A 3D Printer in the Lab: Not Only a Toy.

Authors:  Vittorio Saggiomo
Journal:  Adv Sci (Weinh)       Date:  2022-07-13       Impact factor: 17.521

  5 in total

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